Respuesta :
Answer:
a)  fr = 266.92 N,  fy = 1300 N,  b)   μ = 0.36
Explanation:
a) This is a balancing act.
Let's write the rotational equilibrium relations, where the turning point is the bottom of the ladder and the counterclockwise rotations are positive
       -w x - W x₂ + R y = 0     (1)
usemso trigonometry to find distances
      cos 60.08 = x / 7.5
      x = 7.5 cos 60.08
      x = 3.74 m
fireman
      cos 60.08 = x₂ / 4
      x2 = 4 cos 60
      x2 = 2 m
wall support
      sin 60.08 = y / 15
      y = 15 are 60.08
      y = 13 m
we substitute in equation 1
      R y = w x + W x2
      R = (w x + W x2) / y
      R = (500 3.74 +800 2) / 13
      R = 266.92 N
now let's write the expressions for the translational equilibrium
X axis
      R -fr = 0
      R = fr
      fr = 266.92 N
Y Axis Â
      Fy - w-W = 0
      fy = 500 + 800
      fy = 1300 N
b) ask the friction coefficient
the firefighter's distance is
     cos 60.08 = x₃ / 9.00
     x₃ = 9 cos 60
     x₃ = 5.28 m
from equation 1
     R = (w x + W x₃) / y
     R = 500 3.74 + 800 5.28) / 13
     R = 468.769 N
we saw that
     fr = R = 468.769
The expression for the friction force is
     fr = μ N
in this case the normal is the ratio to pesos
    N = Fy
    N = 1300 N
    μ N = fr
    μ = fr / N
    μ = 468,769 / 1300
     μ = 0.36
